featurebase/api_test.go
Seebs b391ab9153 mutex sanity-check
This implements a fairly straightforward sanity-check for mutexes,
implemented as a bitmapfilter at the fragment level, and with higher
levels combining results. There's two endpoints, an internal endpoint
which only checks the local node's shards, and an external one which
forwards requests (using the internal endpoint) to all the other nodes.

The internal endpoint does not do key translation, the external one
does.

The transmission format is a probably-inefficient JSON blob, and
returns data separated per-shard so we don't have as much merging
work to do.

This introduces a horrifying monstrosity function which tries to
sneakily corrupt mutex fields and which has to be exported (EWWWWW)
but which is only present in _test code (!??!! THIS WORKS WHY).

Also one typo fix in unrelated code caused by not wanting to keep
fighting with gofmt about this.
2021-09-07 12:41:49 -05:00

1160 lines
33 KiB
Go

// Copyright 2017 Pilosa Corp.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
package pilosa_test
import (
"bytes"
"context"
"errors"
"fmt"
"math"
"math/rand"
"reflect"
"strings"
"testing"
"time"
"github.com/molecula/featurebase/v2"
"github.com/molecula/featurebase/v2/boltdb"
"github.com/molecula/featurebase/v2/http"
"github.com/molecula/featurebase/v2/server"
"github.com/molecula/featurebase/v2/shardwidth"
"github.com/molecula/featurebase/v2/test"
. "github.com/molecula/featurebase/v2/vprint" // nolint:staticcheck
)
func TestAPI_Import(t *testing.T) {
c := test.MustRunCluster(t, 3,
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node0"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node1"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node2"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
)
defer c.Close()
m0 := c.GetNode(0)
m1 := c.GetNode(1)
t.Run("RowIDColumnKey", func(t *testing.T) {
ctx := context.Background()
indexName := "rick"
fieldName := "f"
index, err := m0.API.CreateIndex(ctx, indexName, pilosa.IndexOptions{Keys: true, TrackExistence: true})
if err != nil {
t.Fatalf("creating index: %v", err)
}
if index.CreatedAt() == 0 {
t.Fatal("index createdAt is empty")
}
field, err := m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeSet(pilosa.DefaultCacheType, 100))
if err != nil {
t.Fatalf("creating field: %v", err)
}
if field.CreatedAt() == 0 {
t.Fatal("field createdAt is empty")
}
rowID := uint64(1)
timestamp := int64(0)
// Generate some keyed records.
rowIDs := []uint64{}
timestamps := []int64{}
N := 10
for i := 1; i <= N; i++ {
rowIDs = append(rowIDs, rowID)
timestamps = append(timestamps, timestamp)
}
// Keys are sharded so ordering is not guaranteed.
colKeys := []string{"col10", "col8", "col9", "col6", "col7", "col4", "col5", "col2", "col3", "col1"}
colKeys = colKeys[:N]
// Import data with keys to the primary and verify that it gets
// translated and forwarded to the owner of shard 0 (node1; because of offsetModHasher)
req := &pilosa.ImportRequest{
Index: indexName,
IndexCreatedAt: index.CreatedAt(),
Field: fieldName,
FieldCreatedAt: field.CreatedAt(),
Shard: 0, // import is all on shard 0, why are we making lots of other shards? b/c this is not a restriction.
RowIDs: rowIDs,
ColumnKeys: colKeys,
Timestamps: timestamps,
}
qcx := m0.API.Txf().NewQcx()
if err := m0.API.Import(ctx, qcx, req); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
pql := fmt.Sprintf("Row(%s=%d)", fieldName, rowID)
// Query node0.
if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: indexName, Query: pql}); err != nil {
t.Fatal(err)
} else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) {
t.Fatalf("expected colKeys='%#v'; observed column keys: %#v", colKeys, keys)
}
// Query node1.
if err := test.RetryUntil(5*time.Second, func() error {
if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: indexName, Query: pql}); err != nil {
return err
} else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) {
return fmt.Errorf("unexpected column keys: %#v", keys)
}
return nil
}); err != nil {
t.Fatal(err)
}
})
// Relies on the previous test creating an index with TrackExistence and
// adding some data.
t.Run("SchemaHasNoExists", func(t *testing.T) {
schema, err := m1.API.Schema(context.Background(), false)
if err != nil {
t.Fatal(err)
}
for _, f := range schema[0].Fields {
if f.Name == "_exists" {
t.Fatalf("found _exists field in schema")
}
if strings.HasPrefix(f.Name, "_") {
t.Fatalf("found internal field '%s' in schema output", f.Name)
}
}
})
}
func TestAPI_ImportValue(t *testing.T) {
c := test.MustRunCluster(t, 3,
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node0"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node1"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node2"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
)
defer c.Close()
coord := c.GetPrimary()
m0 := c.GetNode(0)
m1 := c.GetNode(1)
m2 := c.GetNode(2)
t.Run("ValColumnKey", func(t *testing.T) {
ctx := context.Background()
index := "valck"
field := "f"
_, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: true})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = coord.API.CreateField(ctx, index, field, pilosa.OptFieldTypeInt(math.MinInt64, math.MaxInt64))
if err != nil {
t.Fatalf("creating field: %v", err)
}
// Generate some keyed records.
values := []int64{}
for i := 1; i <= 10; i++ {
values = append(values, int64(i))
}
// Column keys are sharded so their order is not guaranteed.
colKeys := []string{"col10", "col8", "col9", "col6", "col7", "col4", "col5", "col2", "col3", "col1"}
// Import data with keys to the primary and verify that it gets
// translated and forwarded to the owner of shard 0 (node1; because of offsetModHasher)
req := &pilosa.ImportValueRequest{
Index: index,
Field: field,
ColumnKeys: colKeys,
Values: values,
}
qcx := coord.API.Txf().NewQcx()
if err := coord.API.ImportValue(ctx, qcx, req); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
pql := fmt.Sprintf("Row(%s>0)", field)
// Query node0.
if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil {
t.Fatal(err)
} else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) {
t.Fatalf("unexpected column keys: %+v", keys)
}
// Query node1.
if err := test.RetryUntil(5*time.Second, func() error {
if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil {
return err
} else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) {
return fmt.Errorf("unexpected column keys: %+v", keys)
}
return nil
}); err != nil {
t.Fatal(err)
}
})
t.Run("ValDecimalField", func(t *testing.T) {
ctx := context.Background()
index := "valdec"
field := "fdec"
_, err := m2.API.CreateIndex(ctx, index, pilosa.IndexOptions{})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = m2.API.CreateField(ctx, index, field, pilosa.OptFieldTypeDecimal(1))
if err != nil {
t.Fatalf("creating field: %v", err)
}
// Generate some records.
values := []float64{}
colIDs := []uint64{}
for i := 0; i < 10; i++ {
values = append(values, float64(i)+0.1)
colIDs = append(colIDs, uint64(i))
}
// Import data with keys to node1 and verify that it gets translated and
// forwarded to the owner of shard 0 (node0; because of offsetModHasher)
req := &pilosa.ImportValueRequest{
Index: index,
Field: field,
ColumnIDs: colIDs,
FloatValues: values,
}
qcx := m0.API.Txf().NewQcx()
if err := m0.API.ImportValue(ctx, qcx, req); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
query := fmt.Sprintf("Row(%s>6)", field)
// Query node0.
if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: query}); err != nil {
t.Fatal(err)
} else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, colIDs[6:]) {
t.Fatalf("unexpected column keys: observerd %+v; expected '%+v'", ids, colIDs[6:])
}
})
t.Run("ValDecimalFieldNegativeScale", func(t *testing.T) {
ctx := context.Background()
index := "valdecneg"
field := "fdecneg"
_, err := m0.API.CreateIndex(ctx, index, pilosa.IndexOptions{})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = m0.API.CreateField(ctx, index, field, pilosa.OptFieldTypeDecimal(-1))
if err == nil {
t.Fatal("expected error creating field")
}
})
t.Run("ValTimestampField", func(t *testing.T) {
ctx := context.Background()
index := "valts"
field := "fts"
_, err := m1.API.CreateIndex(ctx, index, pilosa.IndexOptions{})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = m1.API.CreateField(ctx, index, field, pilosa.OptFieldTypeTimestamp(pilosa.DefaultEpoch, pilosa.TimeUnitSeconds))
if err != nil {
t.Fatalf("creating field: %v", err)
}
// Generate some records.
values := []time.Time{}
colIDs := []uint64{}
for i := 0; i < 10; i++ {
values = append(values, pilosa.MinTimestamp.Add(time.Duration(i)*time.Second))
colIDs = append(colIDs, uint64(i))
}
// Import data with keys to node1 and verify that it gets translated and
// forwarded to the owner of shard 0 (node0; because of offsetModHasher)
req := &pilosa.ImportValueRequest{
Index: index,
Field: field,
ColumnIDs: colIDs,
TimestampValues: values,
}
qcx := m2.API.Txf().NewQcx()
if err := m2.API.ImportValue(ctx, qcx, req); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
query := fmt.Sprintf("Row(%s>='1833-11-24T17:31:50Z')", field) // 6s after MinTimestamp
// Query node0.
if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: query}); err != nil {
t.Fatal(err)
} else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, colIDs[6:]) {
t.Fatalf("unexpected column keys: observerd %+v; expected '%+v'", ids, colIDs[6:])
}
})
t.Run("ValStringField", func(t *testing.T) {
ctx := context.Background()
index := "valstr"
field := "fstr"
fgnIndex := "fgnvalstr"
_, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = coord.API.CreateIndex(ctx, fgnIndex, pilosa.IndexOptions{Keys: true})
if err != nil {
t.Fatalf("creating foreign index: %v", err)
}
_, err = coord.API.CreateField(ctx, index, field,
pilosa.OptFieldTypeInt(0, math.MaxInt64),
pilosa.OptFieldForeignIndex(fgnIndex),
)
if err != nil {
t.Fatalf("creating field: %v", err)
}
// Generate some keyed records.
values := []string{}
colIDs := []uint64{}
for i := 0; i < 10; i++ {
value := fmt.Sprintf("strval-%d", (i)*100+10)
values = append(values, value)
colIDs = append(colIDs, uint64(i))
}
// Import data with keys to the node0 and verify that it gets translated
// and forwarded to the owner of shard 0 (node1; because of
// offsetModHasher)
req := &pilosa.ImportValueRequest{
Index: index,
Field: field,
ColumnIDs: colIDs,
StringValues: values,
}
qcx := m0.API.Txf().NewQcx()
if err := m0.API.ImportValue(ctx, qcx, req); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
pql := fmt.Sprintf(`Row(%s=="strval-110")`, field)
// Query node1.
if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil {
t.Fatal(err)
} else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, []uint64{1}) {
t.Fatalf("unexpected columns: observerd %+v; expected '%+v'", ids, []uint64{1})
}
})
}
func TestAPI_Ingest(t *testing.T) {
ctx, cancel := context.WithCancel(context.Background())
defer cancel()
c := test.MustRunCluster(t, 1,
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node0"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
)
defer c.Close()
coord := c.GetPrimary()
// m0 := c.GetNode(0)
// m1 := c.GetNode(1)
// m2 := c.GetNode(2)
index := "ingest"
setField := "set"
timeField := "tq"
_, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: false})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = coord.API.CreateField(ctx, index, setField, pilosa.OptFieldTypeSet("none", 0))
if err != nil {
t.Fatalf("creating field: %v", err)
}
_, err = coord.API.CreateField(ctx, index, timeField, pilosa.OptFieldTypeTime("YMD"))
if err != nil {
t.Fatalf("creating field: %v", err)
}
sampleJson := []byte(`
[
{
"action": "set",
"records": {
"2": {
"set": [2],
"tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [6] }
},
"5": { "set": [3] },
"8": { "set": [3] },
"1": {
"set": [2],
"tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [3, 4] }
},
"4": { "set": [3, 7] }
}
},
{
"action": "clear",
"record_ids": [ 5, 6, 7 ],
"fields": [ "tq", "set" ]
},
{
"action": "write",
"records": {
"8": { "tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [3, 4] } },
"9": { "set": [7, 3] }
}
},
{
"action": "delete",
"record_ids": [ 9 ]
}
]
`)
// just for set row 3:
// first operation should set it for 4, 5, and 8.
// clear operation should clear it for 5, 6, and 7, leaving it still set for 4 and 8.
// the write operation should clear set for record 8, even though record 8 doesn't
// contain that field in that op, because set is present in record 9, which also
// gets row 3 set. but then we delete 9.
// so after all that we expect Row(set=3) to be 4...
sampleBuf := bytes.NewBuffer(sampleJson)
qcx := coord.API.Txf().NewQcx()
defer func() {
if err := qcx.Finish(); err != nil {
t.Fatalf("finishing qcx: %v", err)
}
}()
err = coord.API.IngestOperations(ctx, qcx, index, sampleBuf)
if err != nil {
t.Fatalf("importing data: %v", err)
}
query := "Row(set=3)"
res, err := coord.API.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query})
if err != nil {
t.Errorf("query: %v", err)
}
r := res.Results[0].(*pilosa.Row).Columns()
if len(r) != 1 || r[0] != 4 {
t.Fatalf("expected row with 4 set, got %d", r)
}
}
// ingestBenchmarkHelper makes it easier to exclude this from benchmark computations
// and profiles.
func ingestBenchmarkHelper() []byte {
buf := &bytes.Buffer{}
buf.WriteString(`[{"action": "write", "records": {`)
comma := ""
now := time.Now().Add(-3840000 * time.Second)
for i := 0; i < 1000000; i++ {
then := now.Add(time.Duration(rand.Int63n(1234567)) * time.Second)
fmt.Fprintf(buf, `%s"%d": { "set": [%d, %d], "int": %d, "tq": { "time": "%s", "values": %d } }`, comma, i, i%2, (i%4)+2, rand.Int63n(163840),
then.Format(time.RFC3339), rand.Int63n(25))
comma = ", "
}
buf.WriteString(`}}]`)
data := buf.Bytes()
return data
}
func BenchmarkIngest(b *testing.B) {
b.StopTimer()
data := ingestBenchmarkHelper()
ctx, cancel := context.WithCancel(context.Background())
defer cancel()
c := test.MustRunCluster(b, 1,
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node0"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
)
defer c.Close()
coord := c.GetPrimary()
m0 := c.GetNode(0)
// m1 := c.GetNode(1)
// m2 := c.GetNode(2)
index := "ingest"
setField := "set"
intField := "int"
tqField := "tq"
_, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: false})
if err != nil {
b.Fatalf("creating index: %v", err)
}
_, err = coord.API.CreateField(ctx, index, setField, pilosa.OptFieldTypeSet("none", 0))
if err != nil {
b.Fatalf("creating field: %v", err)
}
_, err = coord.API.CreateField(ctx, index, intField, pilosa.OptFieldTypeInt(0, 163840))
if err != nil {
b.Fatalf("creating field: %v", err)
}
_, err = coord.API.CreateField(ctx, index, tqField, pilosa.OptFieldTypeTime("YMDH"))
if err != nil {
b.Fatalf("creating field: %v", err)
}
b.ReportAllocs()
b.StartTimer()
for i := 0; i < b.N; i++ {
qcx := m0.API.Txf().NewQcx()
defer qcx.Abort()
err = coord.API.IngestOperations(ctx, qcx, index, bytes.NewBuffer(data))
if err != nil {
b.Fatalf("ingest: %v", err)
}
err = qcx.Finish()
if err != nil {
b.Fatalf("finish: %v", err)
}
}
}
// offsetModHasher represents a simple, mod-based hashing offset by 1.
type offsetModHasher struct{}
func (*offsetModHasher) Hash(key uint64, n int) int {
return int(key+1) % n
}
func (*offsetModHasher) Name() string { return "mod" }
func TestAPI_ClearFlagForImportAndImportValues(t *testing.T) {
c := test.MustRunCluster(t, 1,
[]server.CommandOption{
server.OptCommandServerOptions(
pilosa.OptServerNodeID("node0"),
pilosa.OptServerClusterHasher(&offsetModHasher{}),
pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)),
)},
)
defer c.Close()
// plan:
// 1. set a bit
// 2. clear with Import() using the ImportRequest.Clear flag
// 3. verifiy the clear is done.
// repeat for ImportValueRequest and ImportValues()
m0 := c.GetNode(0)
m0api := m0.API
ctx := context.Background()
index := "i"
fieldAcct0 := "acct0"
opts := pilosa.OptFieldTypeInt(-1000, 1000)
_, err := m0api.CreateIndex(ctx, index, pilosa.IndexOptions{})
if err != nil {
t.Fatalf("creating index: %v", err)
}
_, err = m0api.CreateField(ctx, index, fieldAcct0, opts)
if err != nil {
t.Fatalf("creating fieldAcct0: %v", err)
}
iraField := "ira" // set field.
iraRowID := uint64(3)
_, err = m0api.CreateField(ctx, index, iraField)
if err != nil {
t.Fatalf("creating fieldIRA: %v", err)
}
acctOwnerID := uint64(78) // ColumnID
shard := acctOwnerID / ShardWidth
acct0bal := int64(500)
ivr0 := &pilosa.ImportValueRequest{
Index: index,
Field: fieldAcct0,
Shard: shard,
ColumnIDs: []uint64{acctOwnerID},
Values: []int64{acct0bal},
}
ir0 := &pilosa.ImportRequest{
Index: index,
Field: iraField,
Shard: shard,
ColumnIDs: []uint64{acctOwnerID},
RowIDs: []uint64{iraRowID},
}
qcx := m0api.Txf().NewQcx()
if err := m0api.Import(ctx, qcx, ir0.Clone()); err != nil {
t.Fatal(err)
}
if err := m0api.ImportValue(ctx, qcx, ivr0.Clone()); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
bitIsSet := func() bool {
query := fmt.Sprintf("Row(%v=%v)", iraField, iraRowID)
res, err := m0api.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query})
PanicOn(err)
cols := res.Results[0].(*pilosa.Row).Columns()
for i := range cols {
if cols[i] == acctOwnerID {
return true
}
}
return false
}
if !bitIsSet() {
PanicOn("IRA bit should have been set")
}
queryAcct := func(m0api *pilosa.API, acctOwnerID uint64, fieldAcct0, index string) (acctBal int64) {
query := fmt.Sprintf("FieldValue(field=%v, column=%v)", fieldAcct0, acctOwnerID)
res, err := m0api.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query})
PanicOn(err)
if len(res.Results) == 0 {
return 0
}
valCount := res.Results[0].(pilosa.ValCount)
return valCount.Val
}
bal := queryAcct(m0api, acctOwnerID, fieldAcct0, index)
if bal != acct0bal {
PanicOn(fmt.Sprintf("expected %v, observed %v starting acct0 balance", acct0bal, bal))
}
// clear the bit
qcx = m0api.Txf().NewQcx()
ir0.Clear = true
if err := m0api.Import(ctx, qcx, ir0); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
if bitIsSet() {
PanicOn("IRA bit should have been cleared")
}
// clear the BSI
qcx = m0api.Txf().NewQcx()
ivr0.Clear = true
if err := m0api.ImportValue(ctx, qcx, ivr0); err != nil {
t.Fatal(err)
}
PanicOn(qcx.Finish())
bal = queryAcct(m0api, acctOwnerID, fieldAcct0, index)
if bal != 0 {
PanicOn(fmt.Sprintf("expected %v, observed %v starting acct0 balance", acct0bal, 0))
}
}
func TestAPI_IDAlloc(t *testing.T) {
c := test.MustRunCluster(t, 3)
defer c.Close()
primary := c.GetPrimary().API
t.Run("Normal", func(t *testing.T) {
key := pilosa.IDAllocKey{
Index: "normal",
Key: "key",
}
var session [32]byte
_, err := rand.Read(session[:])
if err != nil {
t.Fatalf("obtaining random bytes: %v", err)
}
const toReserve = 2
ids, err := primary.ReserveIDs(key, session, ^uint64(0), toReserve)
if err != nil {
t.Fatalf("reserving IDs: %v", err)
}
var numIds uint64
for _, idr := range ids {
numIds += (idr.Last - idr.First) + 1
}
if numIds != toReserve {
t.Errorf("expected %d ids but got %d: %v", toReserve, numIds, ids)
}
err = primary.CommitIDs(key, session, numIds)
if err != nil {
t.Fatalf("committing IDs: %v", err)
}
err = primary.ResetIDAlloc(key.Index)
if err != nil {
t.Fatalf("resetting ID alloc: %v", err)
}
})
t.Run("Offset", func(t *testing.T) {
key := pilosa.IDAllocKey{
Index: "offset",
Key: "key",
}
var session [32]byte
_, err := rand.Read(session[:])
if err != nil {
t.Fatalf("obtaining random bytes: %v", err)
}
ids, err := primary.ReserveIDs(key, session, 0, 2)
if err != nil {
t.Fatalf("reserving IDs: %v", err)
}
{
var numIds uint64
for _, idr := range ids {
numIds += (idr.Last - idr.First) + 1
}
if numIds != 2 {
t.Errorf("expected %d ids but got %d: %v", 2, numIds, ids)
}
}
_, err = rand.Read(session[:])
if err != nil {
t.Fatalf("obtaining random bytes: %v", err)
}
ids2, err := primary.ReserveIDs(key, session, 1, 2)
if err != nil {
t.Fatalf("reserving IDs with partially increased offset: %v", err)
}
var numIds uint64
for _, idr := range ids2 {
numIds += (idr.Last - idr.First) + 1
}
if numIds != 2 {
t.Errorf("expected %d ids but got %d: %v", 2, numIds, ids2)
}
if prevEnd, newStart := ids[len(ids)-1].Last, ids2[0].First; prevEnd != newStart {
t.Errorf("expected reuse of last ID (%d), but started with %d", prevEnd, newStart)
}
err = primary.CommitIDs(key, session, numIds)
if err != nil {
t.Errorf("committing IDs: %v", err)
}
_, err = rand.Read(session[:])
if err != nil {
t.Fatalf("obtaining random bytes: %v", err)
}
ids3, err := primary.ReserveIDs(key, session, 0, 2)
var esync pilosa.ErrIDOffsetDesync
if errors.As(err, &esync) {
if esync.Requested != 0 {
t.Errorf("incorrect requested offset in error: provided %d but got %d", 0, esync.Requested)
}
if esync.Base != 3 {
t.Errorf("incorrect base offset: expected %d but got %d", 3, esync.Base)
}
} else if err == nil {
t.Errorf("successfully re-reserved at a committed offset: %v", ids3)
} else {
t.Fatalf("unexpected error when reserving committed IDs: %v", err)
}
err = primary.ResetIDAlloc(key.Index)
if err != nil {
t.Fatalf("resetting ID alloc: %v", err)
}
})
}
type mutexCheckIndex struct {
index *pilosa.Index
indexName string
createdAt int64
fields map[bool]mutexCheckField
}
type mutexCheckField struct {
fieldName string
field *pilosa.Field
createdAt int64
}
func TestAPI_MutexCheck(t *testing.T) {
c := test.MustRunCluster(t, 3)
defer c.Close()
m0 := c.GetNode(0)
nodesByID := make(map[string]*test.Command, 3)
qcxsByID := make(map[string]*pilosa.Qcx, 3)
for i := 0; i < 3; i++ {
node := c.GetNode(i)
id := node.API.NodeID()
nodesByID[id] = node
}
indexes := make(map[bool]mutexCheckIndex)
ctx := context.Background()
for _, keyedIndex := range []bool{false, true} {
indexName := fmt.Sprintf("i%t", keyedIndex)
index, err := m0.API.CreateIndex(ctx, indexName, pilosa.IndexOptions{Keys: keyedIndex, TrackExistence: true})
if err != nil {
t.Fatalf("creating index: %v", err)
}
if index.CreatedAt() == 0 {
t.Fatal("index createdAt is empty")
}
indexData := mutexCheckIndex{indexName: indexName, index: index, fields: make(map[bool]mutexCheckField), createdAt: index.CreatedAt()}
for _, keyedField := range []bool{false, true} {
fieldName := fmt.Sprintf("f%t", keyedField)
var field *pilosa.Field
if keyedField {
field, err = m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeMutex(pilosa.CacheTypeNone, 0), pilosa.OptFieldKeys())
} else {
field, err = m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeMutex(pilosa.CacheTypeNone, 0))
}
if err != nil {
t.Fatalf("creating field: %v", err)
}
if field.CreatedAt() == 0 {
t.Fatal("field createdAt is empty")
}
indexData.fields[keyedField] = mutexCheckField{fieldName: fieldName, field: field, createdAt: field.CreatedAt()}
}
indexes[keyedIndex] = indexData
}
rowIDs := []uint64{0, 1, 2, 3}
colIDs := []uint64{0, 1, 2, 3}
rowKeysBase := []string{"v0", "v1", "v2", "v3"}
colKeysBase := []string{"c0", "c1", "c2", "c3"}
const nShards = 10
// now, try the same thing for each combination of keyed/unkeyed. we
// share code between keyed/unkeyed fields, but for indexes, the logic
// is fundamentally different because we can't know shards in advance.
indexData := indexes[false]
for keyedField, fieldData := range indexData.fields {
t.Run(fmt.Sprintf("%s-%s", indexData.indexName, fieldData.fieldName), func(t *testing.T) {
for id, node := range nodesByID {
qcxsByID[id] = node.API.Txf().NewQcx()
}
for shard := uint64(0); shard < nShards; shard++ {
// restore row/col ID values which can get altered by imports
for i := range rowIDs {
rowIDs[i] = uint64(i)
colIDs[i] = (shard << shardwidth.Exponent) + uint64(i) + (shard % 4)
}
req := &pilosa.ImportRequest{
Index: indexData.indexName,
IndexCreatedAt: indexData.createdAt,
Field: fieldData.fieldName,
FieldCreatedAt: fieldData.createdAt,
Shard: shard,
ColumnIDs: colIDs,
}
if keyedField {
req.RowKeys = rowKeysBase
} else {
req.RowIDs = rowIDs
}
nodesForShard, err := m0.API.ShardNodes(ctx, indexData.indexName, shard)
if err != nil {
t.Fatalf("obtaining shard list: %v", err)
}
if len(nodesForShard) < 1 {
t.Fatalf("no nodes for shard %d", shard)
}
node := nodesByID[nodesForShard[0].ID]
if err := node.API.Import(ctx, qcxsByID[nodesForShard[0].ID], req); err != nil {
t.Fatalf("importing data: %v", err)
}
}
// and then we break the mutex and close the Qcxs
for id, node := range nodesByID {
field, err := node.API.Field(ctx, indexData.indexName, fieldData.fieldName)
if err != nil {
t.Fatalf("requesting field %s from node %s: %v", fieldData.fieldName, id, err)
}
pilosa.CorruptAMutex(t, field, qcxsByID[id])
err = qcxsByID[id].Finish()
if err != nil {
t.Fatalf("closing out transaction on node %s: %v", id, err)
}
}
qcx := m0.API.Txf().NewQcx()
defer qcx.Abort()
results, err := m0.API.MutexCheck(ctx, qcx, indexData.indexName, fieldData.fieldName)
if err != nil {
t.Fatalf("checking mutexes: %v", err)
}
// first two shards of each group of 4 should have a collision in
// position 1
expected := map[uint64]bool{
(0 << shardwidth.Exponent) + 1: true,
(1 << shardwidth.Exponent) + 1: true,
(4 << shardwidth.Exponent) + 1: true,
(5 << shardwidth.Exponent) + 1: true,
(8 << shardwidth.Exponent) + 1: true,
(9 << shardwidth.Exponent) + 1: true,
}
if keyedField {
mapped, ok := results.(map[uint64][]string)
if !ok {
t.Fatalf("expected map[uint64][]string, got %T", results)
}
seen := 0
for k, v := range mapped {
seen++
if !expected[k] {
t.Fatalf("expected all collisions to be 1 shards (s %% 4 in [0,1]), got %d", k)
}
if len(v) != 2 {
t.Fatalf("expected exactly two collisions")
}
}
if seen != len(expected) {
t.Fatalf("expected exactly %d records to have collisions", len(expected))
}
} else {
mapped, ok := results.(map[uint64][]uint64)
if !ok {
t.Fatalf("expected map[uint64][]uint64, got %T", results)
}
seen := 0
for k, v := range mapped {
seen++
if !expected[k] {
t.Fatalf("expected all collisions to be 1 shards (s %% 4 in [0,1]), got %d", k)
}
if len(v) != 2 {
t.Fatalf("expected exactly two collisions")
}
}
if seen != len(expected) {
t.Fatalf("expected exactly %d records to have collisions", len(expected))
}
}
})
}
indexData = indexes[true]
for keyedField, fieldData := range indexData.fields {
t.Run(fmt.Sprintf("%s-%s", indexData.indexName, fieldData.fieldName), func(t *testing.T) {
for id, node := range nodesByID {
qcxsByID[id] = node.API.Txf().NewQcx()
}
req := &pilosa.ImportRequest{
Index: indexData.indexName,
IndexCreatedAt: indexData.createdAt,
Field: fieldData.fieldName,
FieldCreatedAt: fieldData.createdAt,
Shard: 0, // ignored when using keys
}
rowKeys := make([]string, 0, len(rowKeysBase)*nShards)
colKeys := make([]string, 0, len(rowKeysBase)*nShards)
rowIDs = rowIDs[:0]
for shard := uint64(0); shard < nShards; shard++ {
for i := range rowKeysBase {
colKeys = append(colKeys, fmt.Sprintf("s%d-%s", shard, colKeysBase[i]))
if keyedField {
rowKeys = append(rowKeys, rowKeysBase[i])
} else {
rowIDs = append(rowIDs, uint64(i))
}
}
}
req.ColumnKeys = colKeys
if keyedField {
req.RowKeys = rowKeys
} else {
req.RowIDs = rowIDs
}
var id string
var node *test.Command
for id, node = range nodesByID {
break
}
if err := node.API.Import(ctx, qcxsByID[id], req); err != nil {
t.Fatalf("importing data: %v", err)
}
expected, err := node.API.FindIndexKeys(ctx, indexData.indexName, colKeys...)
if err != nil {
t.Fatalf("looking up index keys: %v", err)
}
for key, id := range expected {
// CorruptAMutex should only corrupt things in position 1 of their
// shards...
if id%(1<<shardwidth.Exponent) != 1 {
delete(expected, key)
}
}
if keyedField {
fieldValues, err := node.API.FindFieldKeys(ctx, indexData.indexName, fieldData.fieldName, rowKeys...)
if err != nil {
t.Fatalf("looking up field keys: %v", err)
}
// Figure out which key got the value 3, delete any records
// which would have had that key, because they won't be
// conflicts.
for key, value := range fieldValues {
if value == 3 {
for offset, baseKey := range rowKeysBase {
if baseKey == key {
for i := offset; i < len(rowKeys); i += len(rowKeysBase) {
delete(expected, colKeys[i])
}
}
}
}
}
} else {
// we set rowKeys to 0-1-2-... for rowKeysBase items, which
// tells us which keys we expect to be 3 already.
for i := 3; i < len(rowIDs); i += len(rowKeysBase) {
delete(expected, colKeys[i])
}
}
// and then we break the mutex and close the Qcxs
for id, node := range nodesByID {
field, err := node.API.Field(ctx, indexData.indexName, fieldData.fieldName)
if err != nil {
t.Fatalf("requesting field %s from node %s: %v", fieldData.fieldName, id, err)
}
pilosa.CorruptAMutex(t, field, qcxsByID[id])
err = qcxsByID[id].Finish()
if err != nil {
t.Fatalf("closing out transaction on node %s: %v", id, err)
}
}
qcx := m0.API.Txf().NewQcx()
defer qcx.Abort()
results, err := m0.API.MutexCheck(ctx, qcx, indexData.indexName, fieldData.fieldName)
if err != nil {
t.Fatalf("checking mutexes: %v", err)
}
if keyedField {
// this just sorta comes out this way with our hashing; these are
// the things which were in position 1 of their shards, and did
// not have a value which happens to map to 3.
mapped, ok := results.(map[string][]string)
if !ok {
t.Fatalf("expected map[string][]string, got %T", results)
}
seen := 0
for k, v := range mapped {
seen++
if _, ok := expected[k]; !ok {
t.Fatalf("unexpected collision on key %q", k)
}
if len(v) != 2 {
t.Fatalf("expected exactly two collisions")
}
}
if seen != len(expected) {
t.Fatalf("expected exactly %d records to have collisions, got %d", len(expected), seen)
}
} else {
mapped, ok := results.(map[string][]uint64)
if !ok {
t.Fatalf("expected map[string][]uint64, got %T", results)
}
seen := 0
for k, v := range mapped {
seen++
if _, ok := expected[k]; !ok {
t.Fatalf("unexpected collision on key %q", k)
}
if len(v) != 2 {
t.Fatalf("expected exactly two collisions")
}
}
if seen != len(expected) {
t.Fatalf("expected exactly %d records to have collisions, got %d", len(expected), seen)
}
}
})
}
}